ReportGem ReportGem

Academic paper

Maximizing Nonclassicality of Massive Objects via Quantum Zeno Effect

Authors: Debarshi Das, Pritam Roy, Marko Toro\v{s}, Hendrik Ulbricht, Dipankar Home, Sougato BosePublished: 2026-08-14Paper ID: 2608.13942Category: quant-phLicense: CC BY 4.0

Abstract

For testing quantum mechanics in the macroscopic domain, a major challenge is to devise effective means for enhancing the observable nonclassical signatures despite the ubiquitous presence of environmental decoherence. Toward this goal, we invoke the Quantum Zeno Effect (QZE) for achieving a tunable amplification of an inherently nonclassical quantum disturbance induced by any measurement. Such an enhancement of otherwise small and decoherence-suppressed nonclassicality can arise from the cumulative quantum disturbances generated by repetitive measurements, with the tunability of amplification controlled by the number of measurements. To evidence this, we formulate a testable loophole-free scheme using a massive oscillator, where the system preparation requires trapping and ground-state cooling of a massive object. The required measurements can be realized through a beam-splitter-type interaction between the mechanical oscillator and an optical field, followed by photon detection. Our analysis shows that such amplification, suitably quantified in terms of a testable witness, remains appreciably observable even in the realistic regimes of optomechanical damping, and for sufficiently large masses, thus enabling the demonstration of QZE in the macroscopic domain.

This public page contains bibliographic metadata and the author abstract. Use the reader for licensed document access.

Open licensed paper reader